College of Horticulture, Hebei Agricultural University, Baoding 071000, China.
School of Pharmacy and Biomolecular Sciences, Liverpool John Moores University, Liverpool L3 3AF, UK.
Int J Mol Sci. 2022 Jun 12;23(12):6570. doi: 10.3390/ijms23126570.
Gibberellic acid (GA) is an important phytohormone that regulates every aspect of plant growth and development. While elements involved in GA signaling have been identified and, hence, their functions have been well studied in model plants, such as Arabidopsis and rice, very little is known in pear. We, therefore, analyzed the genes related to GA signaling from the recently sequenced genome of the wildtype '' pear ( Bunge), a widely used rootstock for grafting in pear cultivation in China due to its vigorous growth and resistance to abiotic and biotic stress. In total, 15 genes were identified, including five GA receptors (), six GA negative regulators, , and four GA positive regulators, . Exogenous application of GA could promote the expression of but inhibit that of and in tissue culture '' pear seedlings. The expression profiles of these genes in field-grown trees under normal growth conditions, as well as in tissue-cultured seedlings treated with auxin (IAA), GA, paclobutrazol (PAC), abscisic acid (ABA), and sodium chloride (NaCl), were also studied, providing further evidence of the involvement of these genes in GA signaling in '' pear plants. The preliminary results obtained in this report lay a good foundation for future research into GA signaling pathways in pear. Importantly, the identification and preliminary functional verification of these genes could guide molecular breeding in order to obtain the highly desired dwarf pear rootstocks for high-density plantation to aid easy orchard management and high yielding of pear fruits.
赤霉素(GA)是一种重要的植物激素,调节植物生长和发育的各个方面。虽然已经鉴定出参与 GA 信号转导的元素,因此在模式植物(如拟南芥和水稻)中对其功能进行了很好的研究,但在梨中知之甚少。因此,我们从最近测序的野生型 ''梨(Bunge)基因组中分析了与 GA 信号转导相关的基因,梨在中国被广泛用作嫁接砧木,因为其生长旺盛,并且能够抵抗非生物和生物胁迫。总共鉴定到 15 个基因,包括 5 个 GA 受体()、6 个 GA 负调控因子和 4 个 GA 正调控因子。外源 GA 的应用可以促进组织培养 ''梨幼苗中 但抑制 和 的表达。还研究了这些基因在正常生长条件下的田间生长树木和经生长素(IAA)、GA、多效唑(PAC)、脱落酸(ABA)和氯化钠(NaCl)处理的组织培养幼苗中的表达谱,进一步证明了这些基因参与 ''梨植物中的 GA 信号转导。本报告中获得的初步结果为梨中 GA 信号通路的未来研究奠定了良好的基础。重要的是,这些基因的鉴定和初步功能验证可以指导分子育种,以获得理想的矮化梨砧木,用于高密度种植园,以方便果园管理和高产梨果。